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  4. Longitudinal shear wave elasticity measurements of millimeter-sized biomaterials using a single-element transducer platform
 
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Longitudinal shear wave elasticity measurements of millimeter-sized biomaterials using a single-element transducer platform

Journal
PloS one
Journal Volume
17
Journal Issue
4
Date Issued
2022-04
Author(s)
SHAO-LUN LU  
Chao, Pei-Yu
WEI-WEN LIU  
Han, Kun
CHIA-HSIEN CHENG  
PAI-CHI LI  
DOI
10.1371/journal.pone.0266235
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/616935
URL
https://scholars.lib.ntu.edu.tw/handle/123456789/605674
Abstract
Temporal variations of the extracellular matrix (ECM) stiffness profoundly impact cellular behaviors, possibly more significantly than the influence of static stiffness. Three-dimensional (3D) cell cultures with tunable matrix stiffness have been utilized to characterize the mechanobiological interactions of elasticity-mediated cellular behaviors. Conventional studies usually perform static interrogations of elasticity at micro-scale resolution. While such studies are essential for investigations of cellular mechanotransduction, few tools are available for depicting the temporal dynamics of the stiffness of the cellular environment, especially for optically turbid millimeter-sized biomaterials. We present a single-element transducer shear wave (SW) elasticity imaging system that is applied to a millimeter-sized, ECM-based cell-laden hydrogel. The single-element ultrasound transducer is used both to generate SWs and to detect their arrival times after being reflected from the side boundaries of the sample. The sample's shear wave speed (SWS) is calculated by applying a time-of-flight algorithm to the reflected SWs. We use this noninvasive and technically straightforward approach to demonstrate that exposing 3D cancer cell cultures to X-ray irradiation induces a temporal change in the SWS. The proposed platform is appropriate for investigating in vitro how a group of cells remodels their surrounding matrix and how changes to their mechanical properties could affect the embedded cells in optically turbid millimeter-sized biomaterials.
Subjects
MAGNETIC-RESONANCE ELASTOGRAPHY; CELL; TISSUE
SDGs

[SDGs]SDG3

Other Subjects
biomaterial; elasticity; elastography; imaging phantom; mechanotransduction; procedures; transducer; Biocompatible Materials; Elasticity; Elasticity Imaging Techniques; Mechanotransduction, Cellular; Phantoms, Imaging; Transducers
Publisher
PUBLIC LIBRARY SCIENCE
Type
journal article

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